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Kinetics and mechanical work done to move the body centre of mass along a curve. | LitMetric

Kinetics and mechanical work done to move the body centre of mass along a curve.

PLoS One

Laboratory of Biomechanics and Physiology of Locomotion, Institute of NeuroScience, Université catholique de Louvain, Louvain-la-Neuve, Belgium.

Published: February 2024

AI Article Synopsis

  • The study examines how runners adjust their center of mass (CoM) trajectory and the work done to maintain movement (Wcom) when running on straight paths versus circular curves.
  • Participants ran at varying speeds on straight lines and two different circular curves (6 m and 18 m), with data collected using force platforms and infrared cameras.
  • Findings indicate that runners compensate for the circular path with greater deviation at higher speeds and shorter radii, while Wcom changes minimally at lower speeds but significantly increases at higher speeds in tighter curves, which has implications for improving training in multidirectional sports.

Article Abstract

When running on a curve, the lower limbs interact with the ground to redirect the trajectory of the centre of mass of the body (CoM). The goal of this paper is to understand how the trajectory of the CoM and the work done to maintain its movements relative to the surroundings (Wcom) are modified as a function of running speed and radius of curvature. Eleven participants ran at different speeds on a straight line and on circular curves with a 6 m and 18 m curvature. The trajectory of the CoM and Wcom were calculated using force-platforms measuring the ground reaction forces and infrared cameras recording the movements of the pelvis. To follow a circular path, runners overcompensate the rotation of their trajectory during contact phases. The deviation from the circular path increases when the radius of curvature decreases and speed increases. Interestingly, an asymmetry between the inner and outer lower limbs emerges as speed increases. The method to evaluate Wcom on a straight-line was adapted using a referential that rotates at heel strike and remains fixed during the whole step cycle. In an 18 m radius curve and at low speeds on a 6 m radius, Wcom changes little compared to a straight-line run. Whereas at 6 m s-1 on a 6 m radius, Wcom increases by ~25%, due to an augmentation in the work to move the CoM laterally. Understanding these adaptations provides valuable insight for sports sciences, aiding in optimizing training and performance in sports with multidirectional movements.

Download full-text PDF

Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10861085PMC
http://journals.plos.org/plosone/article?id=10.1371/journal.pone.0298790PLOS

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